基于welch周期图法的功率谱密度对自闭症儿童脑电图的影响

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引用次数: 1

摘要

自闭症谱系障碍(ASD)是一种严重的影响社会行为的精神障碍。一些孩子还面临智力发育迟缓的问题。在自闭症患者中,检测到的信号与正常人相比有异常。这可作为脑电图诊断的参考。本研究将采用Welch周期图方法分析功率谱密度(PSD)对自闭症儿童脑电图的影响,并将其与正常儿童脑电图的PSD值进行比较。在预处理阶段,将使用独立分量分析(ICA)方法去除伪影,并使用有限脉冲响应(FIR)滤波器降低脑电信号中的噪声。研究结果表明自闭症患者与正常人的脑电图信号的PSD值存在差异。自闭症脑电图信号的PSD值在各频段均高于正常脑电图信号。从研究结果来看,自闭症脑电图信号在δ子带获得的PSD值最高,为54.06 dB/Hz,而正常脑电图信号在同一频率子带的PSD值仅为33.14 dB/Hz。在Alpha和Beta子带中,正常脑电图信号的PSD值升高,而自闭症脑电图信号的PSD值在Alpha和Beta子带中降低。此外,FIR和ICA方法还可以降低自闭症和正常脑电图信号中的噪声和伪影。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The effect of power spectral density on the electroencephalography of autistic children based on the welch periodogram method
Autism spectrum disorder (ASD) is a serious mental disorder affecting social behavior. Some children also face intellectual delay. In people with ASD, the signals detected have abnormalities compared to normal people. This can be a reference in diagnosing the disorder with electroencephalography (EEG). This study will analyze the effect of Power spectral density (PSD) on the EEG of autistic children and also compare it with the PSD value on the EEG of normal children using the Welch Periodogram method approach. In the preprocessing stage, the Independent Component Analysis (ICA) method will be applied to remove artifacts, and a Finite Impulse Response (FIR) filter to reduce noise in the EEG signal. The study results indicate differences in the PSD values ​​obtained in the autistic and normal EEG signals. The PSD value obtained in the autistic EEG signal is higher than the normal EEG signal in all frequency sub-bands. From the study results, the highest PSD value obtained by the autistic EEG signal is in the delta sub-band, which is 54.06 dB/Hz, while the normal EEG signal is only 33.14 dB/Hz at the same frequency sub-band. And in the Alpha and Beta sub-bands, the normal EEG signal increases the PSD value, while in the autistic EEG signal, the PSD value decreases in the Alpha and Beta sub-bands. In addition, FIR and ICA methods can also reduce noise and artifacts contained in autistic and normal EEG signals.
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